Formulation and Characterization of Ketoconazole Transferosomal Gel for Effective Topical Fungal Treatment

Authors

Neelu Vishwas

PG Scholar, SIRT-Pharmacy, Sanjeev Agrawal Global Educational University, Bhopal, Bhopal (MP) (India)

Rakhee Kapadia Jain

Professor, SIRT-Pharmacy, Sanjeev Agrawal Global Educational University, Bhopal, Bhopal (MP) (India)

Jitendra Banweer

Professor (Dean) SIRT-Pharmacy, Sanjeev Agrawal Global Educational University, Bhopal, Bhopal (MP) (India)

Article Information

DOI: 10.51244/IJRSI.2025.120800354

Subject Category: Pharmaceutics

Volume/Issue: 12/9 | Page No: 3953-3967

Publication Timeline

Submitted: 2025-09-06

Accepted: 2025-09-12

Published: 2025-10-14

Abstract

study focuses on the formulation and characterization of a ketoconazole-loaded transferosomal gel for effective topical management of fungal infections. Transferosomes, ultra-deformable vesicular carriers, were employed to enhance drug penetration through the skin and improve therapeutic efficacy. Ketoconazole transferosomes were prepared using the thin-film hydration method and optimized based on vesicle size, entrapment efficiency, and deformability. The optimized formulation was incorporated into a Carbopol-based gel and evaluated for physicochemical properties including pH, spreadability, viscosity, and drug content. In vitro drug release and ex vivo skin permeation studies demonstrated sustained and enhanced release compared to conventional formulations. Antifungal activity against Candida albicans confirmed improved efficacy of the transferosomal gel. Stability studies revealed good formulation stability under refrigerated conditions. Overall, the developed ketoconazole transferosomal gel presents a promising alternative to conventional topical preparations, offering improved skin penetration, sustained release, and enhanced antifungal activity for effective topical fungal treatment.

Keywords

Ketoconazole, Transferosomes, Topical gel, Fungal infection, Skin permeation, Antifungal activity.

Downloads

References

1. S, Amareshwar., Abbaraju, Krishna, Sailaja. (2024). 1. Development and Evaluation of Voriconazole Loaded Transfersomal Gel for Enhanced Antifungal Activity.. International journal of drug delivery technology, doi: 10.25258/ijddt.14.3.32 [Google Scholar] [Crossref]

2. B., Krishna, Das., Amit, Kumar, Nayak., Amit, Kumar, Nayak. (2024). 2. Fluconazole-loaded Hyaluronic Acid-modified Transfersomal Hydrogels Containing D-panthenol for Ocular Delivery in Fungal Keratitis Management. Current Drug Delivery, doi: 10.2174/0115672018342369241018050810 [Google Scholar] [Crossref]

3. S, Amareshwar., Abbaraju, Krishna, Sailaja. (2024). 3. Development and Evaluation of Voriconazole Loaded Invasomes Gel for Enhanced Antifungal Activity.. International journal of pharmaceutical quality assurance, doi: 10.25258/ijpqa.15.3.42 [Google Scholar] [Crossref]

4. Manish, Kumar. (2024). 6. Formulation and Characterization of Isoconazole Loaded Invasomal Gel for Effective Antifungal Activity. International journal of drug delivery technology, doi: 10.25258/ijddt.14.2.47 [Google Scholar] [Crossref]

5. Muhammed, Abdur, Rauf., Nadiah, Zafar., Asif, Mahmood., Yasir, Qavi., Saniia, Shchinar., Rhonira, Latif. (2024). 7. Hydrogel-based delivery systems for topical antifungal therapy: a review. Cellulose Chemistry and Technology, doi: 10.35812/cellulosechemtechnol.2024.58.41 [Google Scholar] [Crossref]

6. Sakshi, Chamel., Anamika, Mishra., Azka, Gull. (2024). 8. Transferosomes as innovative drug delivery systems for enhanced antifungal therapy: A comprehensive review. Journal of Drug Delivery Science and Technology, doi: 10.1016/j.jddst.2024.105545 [Google Scholar] [Crossref]

7. Zhiqiang, Cheng., Ujjwala, Kandekar., Xiaoshi, Ma., Vishal, Bhabad., Ashlesha, Pandit., Liming, Liu., Jiping, Luo., Neha, M., Munot., Trushal, V., Chorage., Abhinandan, Patil., Sandip, Patil., Liang, Tao. (2024). 10. Optimizing fluconazole-embedded transfersomal gel for enhanced antifungal activity and compatibility studies. Frontiers in Pharmacology, doi: 10.3389/fphar.2024.1353791 [Google Scholar] [Crossref]

8. Sukanya, Patil., Jaya, Agnihotri. (2023). 11. Formulation development, optimization, and characterization of anti-fungal topical biopolymeric film using a niosomal approach. International Journal of Science and Research Archive, doi: 10.30574/ijsra.2023.8.1.0031 [Google Scholar] [Crossref]

9. Nur, Zakiyah, Darajat., Anis, Yohana, Chaerunisaa., Marline, Abdassah. (2023). 13. Transfersome as Topical Drug Delivery: Formulation and Characterization. Jurnal Farmasi Galenika (Galenika Journal of Pharmacy), doi: 10.22487/j24428744..v.i.16030 [Google Scholar] [Crossref]

10. H., N., Gayathri., Shanmugasundaram, Sangeetha. (2022). 17. Pharmaceutical development of metronidazole loaded transferosome gel for skin delivery. International Journal of Health Sciences (IJHS), doi: 10.53730/ijhs.v6ns7.11848. [Google Scholar] [Crossref]

11. Miyuki K, Morishita E, Shibata S. Constituents of Cassia toraL: Glucosides of Rubrofusarin, Chem.Pharm.Bull, 1969, 17,458. [Google Scholar] [Crossref]

12. Acharya T.K. and Chatterjee I.B., Isolation of chrysophanic acid –9-anthrone, a fungicidal compound from Cassia tora, Sci.Cult. 1974, 40,376. [Google Scholar] [Crossref]

13. Pawar H., D’Mello PM, Isolation of seed gum from Cassia tora and Preliminary studies of its application as binder for tablets, Indian Drugs, 2004, 41(8), 465 [Google Scholar] [Crossref]

14. Lohar D.L., Chawan D.D. and Garg S.P., Phytochemical studies on Cassia species of Indian Arid Zone” Current Science, 1975, 44(2), 67. [Google Scholar] [Crossref]

15. Yameen SH, Shahidulla SM, "Formulation and evaluation of Lamivudine transferosomal gel" Journal of Drug Delivery and Therapeutics, 2022; 12(6):163-170. https://doi.org/10.22270/jddt.v12i4-S.5768 [Google Scholar] [Crossref]

16. Farooqui N, Kar M, Jain S, "Development and evaluation of proniosomes as drug carriers for transdermal delivery of ketorolac tromethamine" Journal of Drug Delivery and Therapeutics, 2017; 7(7):38-40. https://doi.org/10.22270/jddt.v7i7.1580 [Google Scholar] [Crossref]

17. Nimker V, Jamal H, Ghosh P, Jain S, Beotra A, "Liposomes: drug delivery system or possible doping agent?" Journal of Drug Delivery and Therapeutics, 2017; 7(1):25-29. https://doi.org/10.22270/jddt.v7i1.1369 [Google Scholar] [Crossref]

18. Mishra M. and Biswal P, "Complexation, Optimization, Formulation development and characterization of clindamycin phosphate gel using zinc acetate dehydrate" International journal of pharmacy, 2012; 2(3):472-486. [Google Scholar] [Crossref]

19. Gupta A, Mishra AK, Singh AK, Gupta V and Bansal P, "Formulation and evaluation of topical gel of Diclofenac sodium using different polymers" Drug Invention Today, 2010; 2(5):250-253. [Google Scholar] [Crossref]

20. Jivrani Shilpa D, Patel Vijay K, Formulation, "Development and Evaluation of Niosomal Drug Delivery System for Clindamycin Phosphate" Pharma Science Monitor, 2014; 5(2):256-274. [Google Scholar] [Crossref]

Metrics

Views & Downloads

Similar Articles